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Non-covalent interactions of alkali metal cations with singly charged tryptic peptides

机译:碱金属阳离子与单电荷胰蛋白酶肽的非共价相互作用

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摘要

The complexes formed by alkali metal cations (Cat~+ = Li ~+, Na~+, K~+, Rb~+) and singly charged tryptic peptides were investigated by combining results from the low-energy collision-induced dissociation (CID) and ion mobility experiments with molecular dynamics and density functional theory calculations. The structure and reactivity of [M + H + Cat]~(2+) tryptic peptides is greatly influenced by charge repulsion as well as the ability of the peptide to solvate charge points. Charge separation between fragment ions occurs upon dissociation, i.e. b ions tend to be alkali metal cationised while y ions are protonated, suggesting the location of the cation towards the peptide N-terminus. The low-energy dissociation channels were found to be strongly dependant on the cation size. Complexes containing smaller cations (Li~+ or Na~+) dissociate predominantly by sequence-specific cleavages, whereas the main process for complexes containing larger cations (Rb~+) is cation expulsion and formation of [M + H]~+. The obtained structural data might suggest a relationship between the peptide primary structure and the nature of the cation coordination shell. Peptides with a significant number of side chain carbonyl oxygens provide good charge solvation without the need for involving peptide bond carbonyl groups and thus forming a tight globular structure. However, due to the lack of the conformational flexibility which would allow effective solvation of both charges (the cation and the proton) peptides with seven or less amino acids are unable to form sufficiently abundant [M + H + Cat]~(2+) ion. Finally, the fact that [M + H + Cat] ~(2+) peptides dissociate similarly as [M + H]~+ (via sequence-specific cleavages, however, with the additional formation of alkali metal cationised b ions) offers a way for generating the low-energy CID spectra of 'singly charged' tryptic peptides.
机译:通过结合低能碰撞诱导解离(CID)的结果,研究了碱金属阳离子(Cat〜+ = Li〜+,Na〜+,K〜+,Rb〜+)和单电荷胰蛋白酶肽形成的配合物。离子迁移率实验以及分子动力学和密度泛函理论计算。 [M + H + Cat]〜(2+)胰蛋白酶肽的结构和反应性受到电荷排斥力以及该肽溶解电荷点能力的极大影响。解离时会发生碎片离子之间的电荷分离,即b离子倾向于被碱金属阳离子化,而y离子被质子化,这表明阳离子朝向肽N端定位。发现低能解离通道强烈依赖于阳离子的大小。包含较小阳离子(Li〜+或Na〜+)的配合物主要通过序列特异性切割解离,而包含较大阳离子(Rb〜+)的配合物的主要过程是阳离子驱逐和[M + H]〜+的形成。获得的结构数据可能暗示了肽一级结构与阳离子配位壳的性质之间的关系。具有大量侧链羰基氧的肽可提供良好的电荷溶剂化,而无需涉及肽键羰基,从而形成紧密的球状结构。但是,由于缺乏构象柔韧性,使具有七个或更少氨基酸的两个电荷(阳离子和质子)肽有效地溶解,因此无法形成足够丰富的[M + H + Cat]〜(2+)离子。最后,[M + H + Cat]〜(2+)肽的解离与[M + H]〜+相似(通过序列特异性裂解,但另外形成碱金属阳离子化的b离子),这一事实提供了生成“单电荷”胰蛋白酶肽的低能CID谱的方法。

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